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Article

Shaping the Structure and Properties of Stellite 6 Alloy by Addition of Ti and W via Laser Cladding

Welding Department, Faculty of Mechanical Engineering, Silesian University of Technology, Konarskiego Street 18A, 44-100 Gliwice, Poland
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Authors to whom correspondence should be addressed.
Materials 2025, 18(17), 3968; https://doi.org/10.3390/ma18173968
Submission received: 18 July 2025 / Revised: 18 August 2025 / Accepted: 20 August 2025 / Published: 25 August 2025
(This article belongs to the Special Issue Fusion Bonding/Welding of Metal and Non-Metallic Materials)

Highlights

  1. Laser cladding of Co-Cr-W-C-Ti alloys produced high-quality coatings, where increased graphite and titanium content led to an increased cross-sectional area of the clad.
  2. The in situ formation of primary and eutectic (Ti,W)C carbides was enabled by the addition of titanium, tungsten, and carbon.
  3. TEM analysis revealed a tungsten concentration gradient in (Ti,W)C carbides, indicating progressive tungsten dissolution into the TiC lattice.
  4. Erosion resistance improved with Ti and C additions, especially at 30° impingement, due to formation of hard (Ti,W)C carbides.

Abstract

Cobalt-based alloys such as Stellite 6 are widely applied in demanding conditions because of their good resistance to wear, erosion, and corrosion, but further improvements in erosion resistance are still required. This work analyzes the effect of adding titanium and tungsten on the structure and properties of Stellite 6 coatings produced by laser cladding, aiming to enhance their erosion resistance. Penetrant tests confirmed that the additions did not reduce coating quality, and macroscopic observations showed that appropriate process parameters allowed for defect-free coatings with strong bonding to the substrate. Microstructural studies carried out by SEM/EDS (Scanning Electron Microscopy/ Energy Dispersive Spectroscopy) and XRD (X-ray Diffraction) revealed that the reference Stellite 6 coating consisted of a cobalt-based austenitic matrix with interdendritic chromium carbides, while Ti and W additions led to the in situ formation of primary and eutectic (Ti,W)C carbides. Transmission electron microscopy showed a gradient in tungsten concentration inside the primary carbides, with progressive tungsten dissolution into the TiC lattice. Although different powder compositions had only a moderate effect on hardness, erosion tests demonstrated that the coatings with Ti and W exhibited clearly improved resistance. In particular, the in situ carbides enhanced erosion resistance at 30° impingement angles, while also maintaining high resistance under 90° impact. These findings confirm that modifying Stellite 6 with Ti and W during laser cladding is an effective way to improve its durability in erosive conditions.
Keywords: Stellite 6; in situ; laser cladding; erosive wear; TiC; cobalt alloys Stellite 6; in situ; laser cladding; erosive wear; TiC; cobalt alloys
Graphical Abstract

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MDPI and ACS Style

Górka, J.; Poloczek, T.; Janicki, D.; Lont, A. Shaping the Structure and Properties of Stellite 6 Alloy by Addition of Ti and W via Laser Cladding. Materials 2025, 18, 3968. https://doi.org/10.3390/ma18173968

AMA Style

Górka J, Poloczek T, Janicki D, Lont A. Shaping the Structure and Properties of Stellite 6 Alloy by Addition of Ti and W via Laser Cladding. Materials. 2025; 18(17):3968. https://doi.org/10.3390/ma18173968

Chicago/Turabian Style

Górka, Jacek, Tomasz Poloczek, Damian Janicki, and Aleksandra Lont. 2025. "Shaping the Structure and Properties of Stellite 6 Alloy by Addition of Ti and W via Laser Cladding" Materials 18, no. 17: 3968. https://doi.org/10.3390/ma18173968

APA Style

Górka, J., Poloczek, T., Janicki, D., & Lont, A. (2025). Shaping the Structure and Properties of Stellite 6 Alloy by Addition of Ti and W via Laser Cladding. Materials, 18(17), 3968. https://doi.org/10.3390/ma18173968

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